Multi-Channel Cascadable Parametric Signal Processing for Wavelength Conversion and Nonlinearity Compensation

2017 ◽  
Vol 35 (4) ◽  
pp. 815-823 ◽  
Author(s):  
Shu Namiki ◽  
Karen Solis-Trapala ◽  
Hung Nguyen Tan ◽  
Mark Pelusi ◽  
Takashi Inoue
2020 ◽  
Vol 34 (25) ◽  
pp. 2050260
Author(s):  
Rujing Guo ◽  
Mengxiong Han ◽  
Peiqi Wei ◽  
Shenwei Yin ◽  
Yan Ma

This paper introduces a new nanoscale slot waveguide using organic material, graphene, and silicon-based materials. The physical mechanism of additional biased voltage can improve the performance of graphene-related waveguide, the proposed waveguide exhibits tunable performance including effective refractive index and dispersion without changing its structure and geometric dimension, which contributes to the practical value in future complex signal processing system. Based on the waveguide, wavelength conversion based on four-wave mixing is theoretically investigated in the near-infrared region and the tunable wavelength conversion is realized. These research results will have potential in the fields of data transmission and optical communications and help researchers deeply understand the physical mechanisms and nonlinear effects about the optical pulse generation processes and signal processing.


2019 ◽  
Vol 33 (17) ◽  
pp. 1950187 ◽  
Author(s):  
Peng Xie ◽  
Yu Wen ◽  
Wenqiang Yang ◽  
Zishen Wan ◽  
Jiarui Liu ◽  
...  

In this paper, we propose a micro-ring resonator model based on gallium nitride (GaN) and graphene, which exhibits tunable properties of nonlinearity. It provides a great bandwidth covering from visible to telecommunication band. Especially, based on the characteristic of GaN, it has unique advantages in shorter wavelength, which is used for demonstrating the ultrafast signal processing including wavelength conversion, temporal amplification and pulse compression. Moreover, the tunable signal processing is achieved via the method of applying additional bias voltage to graphene without changing the geometric dimension of the device. These results have significant potential applications of nonlinear optics and optical communications.


2016 ◽  
Vol 2016 ◽  
pp. 1-18 ◽  
Author(s):  
Jian Wang ◽  
Xiao Hu

Possessing a variety of remarkable optical, electronic, and mechanical properties, graphene has emerged as an attractive material for a myriad of optoelectronic applications. The wonderful optical properties of graphene afford multiple functions of graphene based polarizers, modulators, transistors, and photodetectors. So far, the main focus has been on graphene based photonics and optoelectronics devices. Due to the linear band structure allowing interband optical transitions at all photon energies, graphene has remarkably large third-order optical susceptibilityχ(3), which is only weakly dependent on the wavelength in the near-infrared frequency range. The graphene-assisted four-wave mixing (FWM) based wavelength conversions have been experimentally demonstrated. So, we believe that the potential applications of graphene also lie in nonlinear optical signal processing, where the combination of its unique largeχ(3)nonlinearities and dispersionless over the wavelength can be fully exploited. In this review article, we give a brief overview of our recent progress in graphene-assisted nonlinear optical device and their applications, including degenerate FWM based wavelength conversion of quadrature phase-shift keying (QPSK) signal, phase conjugated wavelength conversion by degenerate FWM and transparent wavelength conversion by nondegenerate FWM, two-input and three-input high-base optical computing, and high-speed gate-tunable terahertz coherent perfect absorption (CPA) using a split-ring graphene.


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